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Molecular Flux Dependence of Chemical Patterning by Microcontact Printing

机译:微接触印刷化学构图的分子通量依赖性

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We address the importance of the dynamic molecular ink concentration at a polymer stamp/substrate interface during microcontact displacement or insertion printing. We demonstrate that by controlling molecular flux, we can influence both the molecular-scale order and the rate of molecular exchange of self-assembled monolayers (SAMs) on gold surfaces. Surface depletion of molecular ink at a polymer stamp/substrate interface is driven predominantly by diffusion into the stamp interior; depletion occurs briefly at the substrate by SAM formation, but diffusion of molecules into the bulk of the stamp dominates over practical experimental time scales. As contact time is increased, the interface concentration varies significantly due to diffusion, affecting the quality and coverage of printed films. Controlling interfacial concentration improves printed film reproducibility and the fractional coverage of multicomponent films can be controlled to within a few percent. We first briefly review the important aspects of molecular ink diffusion at a stamp interface and how it relates to experimental duration. We then describe two examples that illustrate control over ink transfer during experiments: the role of contact time on monolayer reproducibility and molecular order, and the fine control of fractional monolayer coverage for the displacement printing of 1-adamantanethiolate SAMs by 1-dodecanethiol.
机译:我们解决了在微接触位移或插入印刷过程中聚合物印模/基材界面处动态分子墨水浓度的重要性。我们证明,通过控制分子通量,我们可以影响金表面上自组装单分子层(SAMs)的分子尺度顺序和分子交换速率。聚合物印模/基材界面处分子墨水的表面耗竭主要是通过扩散到印模内部来驱动的;耗尽通过SAM的形成在基底上短暂发生,但是在实际实验时间范围内,分子向印模主体中的扩散占主导。随着接触时间的增加,界面浓度会因扩散而发生显着变化,从而影响印刷薄膜的质量和覆盖范围。控制界面浓度可提高印刷薄膜的再现性,并且多组分薄膜的覆盖率可控制在百分之几以内。我们首先简要回顾一下分子墨水在印模界面上扩散的重要方面,以及它与实验持续时间的关系。然后,我们描述了两个示例,这些示例说明了在实验过程中对墨水转移的控制:接触时间对单层重现性和分子顺序的作用,以及对1-金刚烷硫醇SAM通过1-十二烷硫醇置换印刷的部分单层覆盖率的精细控制。

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